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首页> 外文期刊>MBio >Core Metabolism Shifts during Growth on Methanol versus Methane in the Methanotroph Methylomicrobium buryatense 5GB1
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Core Metabolism Shifts during Growth on Methanol versus Methane in the Methanotroph Methylomicrobium buryatense 5GB1

机译:甲醇对甲烷的生长过程中核心代谢的变化 Bellaatense 5GB1

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One-carbon compounds such as methane and methanol are of increasing interest as sustainable substrates for biological production of fuels and industrial chemicals. The bacteria that carry out these conversions have been studied for many decades, but gaps exist in our knowledge of their metabolic pathways. One such gap is the difference between growth on methane and growth on methanol. Understanding such metabolism is important, since each has advantages and disadvantages as a feedstock for production of chemicals and fuels. The significance of our research is in the demonstration that the metabolic network is substantially altered in each case and in the delineation of these changes. The resulting new insights into the core metabolism of this bacterium now provide an improved basis for future strain design. ABSTRACT Methylomicrobium buryatense 5GB1 is an obligate methylotroph which grows on methane or methanol with similar growth rates. It has long been assumed that the core metabolic pathways must be similar on the two substrates, but recent studies of methane metabolism in this bacterium suggest that growth on methanol might have significant differences from growth on methane. In this study, both a targeted metabolomics approach and a ~(13)C tracer approach were taken to understand core carbon metabolism in M. buryatense 5GB1 during growth on methanol and to determine whether such differences occur. Our results suggest a systematic shift of active core metabolism in which increased flux occurred through both the Entner-Doudoroff (ED) pathway and the partial serine cycle, while the tricarboxylic acid (TCA) cycle was incomplete, in contrast to growth on methane. Using the experimental results as constraints, we applied flux balance analysis to determine the metabolic flux phenotype of M. buryatense 5GB1 growing on methanol, and the results are consistent with predictions based on ATP and NADH changes. Transcriptomics analysis suggested that the changes in fluxes and metabolite levels represented results of posttranscriptional regulation. The combination of flux balance analysis of the genome-scale model and the flux ratio from ~(13)C data changed the solution space for a better prediction of cell behavior and demonstrated the significant differences in physiology between growth on methane and growth on methanol.
机译:一碳化合物(例如甲烷和甲醇)作为生物燃料和工业化学品生产的可持续基质越来越受到关注。进行这些转化的细菌已被研究了数十年,但我们对其代谢途径的了解仍存在差距。这样的差距之一是甲烷生长与甲醇生长之间的差异。了解这种新陈代谢非常重要,因为每种新陈代谢作为生产化学品和燃料的原料都有其优点和缺点。我们研究的意义在于证明每种情况下的代谢网络都发生了实质性变化,并说明了这些变化。对这种细菌的核心代谢产生的新见解现在为将来的菌株设计提供了改进的基础。摘要甲基微粉菌伯拉非塞5GB1是专性甲基营养菌,在甲烷或甲醇上以相似的增长率生长。长期以来,人们一直认为两种底物上的核心代谢途径必须相似,但是最近对该细菌中甲烷代谢的研究表明,在甲醇上的生长可能与在甲烷上的生长有显着差异。在这项研究中,既有针对性的代谢组学方法,也有〜(13)C示踪剂方法,用于了解在甲醇生长过程中buryatense 5GB1的核心碳代谢,并确定是否发生这种差异。我们的结果表明活性核心代谢的系统转移,其中通过Entner-Doudoroff(ED)途径和部分丝氨酸循环发生通量增加,而三羧酸(TCA)循环不完整,这与甲烷的生长相反。使用实验结果作为约束条件,我们应用通量平衡分析来确定在甲醇上生长的伯氏莫氏杆菌5GB1的代谢通量表型,结果与基于ATP和NADH变化的预测相符。转录组学分析表明通量和代谢物水平的变化代表转录后调控的结果。基因组规模模型的通量平衡分析与〜(13)C数据的通量比的组合改变了溶液空间,可以更好地预测细胞行为,并证明了甲烷生长和甲醇生长之间生理学的显着差异。

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